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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Analysis and Simulation of a Micro Hydrocyclone Device for Particle Liquid Separation
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Analysis and Simulation of a Micro Hydrocyclone Device for Particle Liquid Separation

机译:微型水力旋流器颗粒液分离装置的分析与仿真

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摘要

This paper presents a three-dimensional simulation of a micro hydrocyclone for the separation of micron sized particles from liquid in a particulated sample. A theoretical analysis is performed to demonstrate the working principle of the micro hydrocyclone and develop design models. The geometry of the proposed device is designed based on the Bradley model, since it offers a lower cut-size, thus making it suitable for microfluidics applications. The operational parameters of the hydrocyclone are derived from a dimensional group model. The particle separation process inside the micro hydrocyclone is simulated by solving fluid flows using Navier-Stokes equations and particle dynamics using the Lagrangian approach in a Eulerean fluid. First, the numerical model is validated by comparing the simulation results with the experimental results for a macroscale hydrocyclone reported in the literature. Then, the micro hydrocyclone is simulated and the simulation results are presented and discussed in the context of the functioning of the micro hydrocyclone. Finally, the effects of inlet velocity, vortex finder diameter, particle size, and density on the separation efficiency are investigated. The proposed device can be easily integrated with micro-environments; thus, is suitable for lab-on-chip and micro-systems development.
机译:本文介绍了一个微型水力旋流器的三维模拟,用于从颗粒状样品中的液体中分离出微米级的颗粒。进行了理论分析,以证明微型水力旋流器的工作原理并开发设计模型。所提出的设备的几何形状是根据Bradley模型设计的,因为它提供了较小的切割尺寸,因此使其适用于微流体应用。水力旋流器的运行参数是从维数组模型导出的。通过使用Navier-Stokes方程求解流体流,并使用拉格朗日方法在欧拉流体中模拟颗粒动力学,从而模拟了微型水力旋流器内部的颗粒分离过程。首先,通过将仿真结果与文献中报道的大型水力旋流器的实验结果进行比较来验证数值模型。然后,对微型水力旋流器进行了仿真,并在微型水力旋流器的功能范围内对仿真结果进行了介绍和讨论。最后,研究了入口速度,旋涡寻径器直径,粒径和密度对分离效率的影响。所建议的设备可以轻松地与微环境集成;因此,适用于芯片实验室和微系统开发。

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